Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

The Problem

if i have such a List let's call it Rows and i wan't to add like myDataGrid.ItemsSource = Rows; than i get in all Columns the first myClass per subList

it looks like

 Column0  |  Column1  |  Column2  |  Column3

firstrow0 | firstrow0 | firstrow0 | firstrow0
firstrow1 | firstrow1 | firstrow1 | firstrow1
firstrow2 | firstrow2 | firstrow2 | firstrow2

The Code

XAML

    <DataGrid Name="myDataGrid" AutoGenerateColumns="False">
        <DataGrid.Columns >
            <DataGridTemplateColumn>                    
                <DataGridTemplateColumn.CellTemplate>
                    <DataTemplate  DataType="{x:Type vmv:myClass}">
                        <TextBlock Text="{Binding Name}"/>
                    </DataTemplate>
                </DataGridTemplateColumn.CellTemplate>
            </DataGridTemplateColumn>

            <DataGridTemplateColumn>
                <DataGridTemplateColumn.CellTemplate>
                    <DataTemplate DataType="{x:Type vmv:myClass}">
                        <TextBlock Text="{Binding Name}"/>
                    </DataTemplate>
                </DataGridTemplateColumn.CellTemplate>                  
            </DataGridTemplateColumn>

            <DataGridTemplateColumn>
                <DataGridTemplateColumn.CellTemplate>
                    <DataTemplate  DataType="{x:Type vmv:myClass}">
                        <TextBlock Text="{Binding Name}"/>
                    </DataTemplate>
                </DataGridTemplateColumn.CellTemplate>
            </DataGridTemplateColumn>

        </DataGrid.Columns>
    </DataGrid>

behind

        var list = new List<List<myClass>>();

        for (int row = 0; row < 3; row++)
        {
            var myRow = new List<myClass>();
            for (int col = 0; col < 5; col++)
                myRow.Add(new myClass() { ID = col, Name = "Row"+row +" Column:" + col });
            list.Add(myRow);
        }

        myDataGrid.ItemsSource = list.AsEnumerable<IEnumerable>();

myClass

public class myClass
{
    public int ID { get; set; }
    public string Name { get; set; }
    // other stuff
}

The Question

What do i need to get this working. Do i need to cast it in some way? Do i need some other Object as a List<>? Anything that could help is greatly appreciated!

EDIT

in RL Code i will not be able to change the DataTemplate part because it part of XAMLFile that will created by my company so it will fit so parameters but original it will only be for printing. I only load it to Find("ItemTemplate") => cast it as DataTemplate and us it to provide a WYSIWYG for the DataGridCell because the Width and Height will be different from PrintTemplate to PrintTemplate

Solution

the following code is the solution for my specific Problem take also a look at michele Answer

        #region example Datacreation
        var list = new List<IEnumerable>();

        for (int row = 0; row < 5; row++)
        {
            var myRow = new List<myClass>();
            for (int col = 0; col < 5; col++)
            {
                myRow.Add(new myClass() { ID = col, Name = "Row" + row + " Column:" + col });
            }
            list.Add(myRow);
        }
        #endregion

        #region FileToDataTemplate
        var myXamlFile = "<Window xmlns='http://schemas.microsoft.com/winfx/2006/xaml/presentation' "
                   + "xmlns:x='http://schemas.microsoft.com/winfx/2006/xaml' "
                   + "xmlns:vmv='clr-namespace:toDataGrid;assembly=toDataGrid' " //namespace
                   + "SizeToContent='WidthAndHeight'>"
                   + "<Window.Resources>"
                       + "<DataTemplate x:Name='myFileCellTemplate' DataType='{x:Type vmv:myClass}'>"
                            + "<TextBlock Text='{Binding Name}'/>"
                        + "</DataTemplate>"
                   + "</Window.Resources>"
            // some stuff
             + "</Window>";

        Window myWindow = (Window)XamlReader.Load(XmlReader.Create(new StringReader(myXamlFile)));
        myWindow.Close();

        DataTemplate myCellTemplate = (DataTemplate)myWindow.FindName("myFileCellTemplate");
        #endregion

        DataGrid myDataGrid = new DataGrid();

        #region dyn DataGridcreation
        for (int col = 0; col < 5; col++)
        {
            #region HelperDataTemplatecreation
            var myResourceDictionaryString = "<ResourceDictionary xmlns='http://schemas.microsoft.com/winfx/2006/xaml/presentation' "
                                                                   + "xmlns:x='http://schemas.microsoft.com/winfx/2006/xaml' "
                                                                   + "xmlns:vmv='clr-namespace:toDataGrid;assembly=toDataGrid'>" //namespace

                                                                       + "<DataTemplate DataType='{x:Type vmv:myClass}'>"
                                                                           + "<Label Content='{Binding [" + col + "]}'/>"
                                                                       + "</DataTemplate>"
                                                  + "</ResourceDictionary> ";

            ResourceDictionary ResDic = (ResourceDictionary)XamlReader.Load(XmlReader.Create(new StringReader(myResourceDictionaryString)));

            DataTemplate HelpDTemp = (DataTemplate)ResDic[ResDic.Keys.Cast<Object>().First()];
            #endregion

            DataGridTemplateColumn templateColumn = new DataGridTemplateColumn();


            templateColumn.Header = col;

            templateColumn.CellTemplate = HelpDTemp;
            templateColumn.CellEditingTemplate = HelpDTemp;

            myDataGrid.Columns.Add(templateColumn);
        }
        #endregion


        myDataGrid.Resources.Add(new DataTemplateKey(typeof(myClass)), myCellTemplate);
        myDataGrid.ItemsSource = list.AsEnumerable<IEnumerable>();
share|improve this question
    
Does this help: stackoverflow.com/questions/11950312/… ? –  TheKingDave Feb 19 '13 at 15:24
    
I'll try it maybe it works how i exspect –  WiiMaxx Feb 19 '13 at 15:28

1 Answer 1

up vote 1 down vote accepted

In your shoes I will generate all the DataGridColumns programmatically (as suggested in the comments) so you can assign the correct DataContext to every cell and everything will be really dynamic.

But, if your question it's only about a DataBinding problem, your example will work if you change your TextBlock DataBinding expression to:

<TextBlock Text="{Binding [0].Name}"/>

for the first data template, [1].Name and [2].Name for the other two DataTemplates. That's will work beacuse your row DataContext is a List<T>, so adding [#] to your DataBinding expression will set the data context of every cell to the correct object.

EDIT - Based on comments below: How to create datagridcolumn programmatically using a given datattemplate from resources.

In code behind

//In your example you have 5 columns    
for (int c = 0; c < 5; c++)
{
  DataGridTemplateColumn column = new DataGridTemplateColumn();
  //Basically i will wrap your DataTemplate in a ContentPresenter
  //The ContentProperty is set to point to the correct element of your list                  
  var factory = new FrameworkElementFactory(typeof(ContentPresenter));
  factory.SetBinding(ContentPresenter.ContentProperty, new Binding(string.Format("[{0}]", c.ToString())));
  factory.SetValue(ContentPresenter.ContentTemplateProperty, this.FindResource("YourTemplateName") as DataTemplate);
  column.SetValue(DataGridTemplateColumn.CellTemplateProperty, new DataTemplate { VisualTree = factory });
  myDataGrid.Columns.Add(column);
}
share|improve this answer
    
how can i do this in code? because myDatagrid it's in my original code generated in code an Bounded to my View per Property –  WiiMaxx Feb 19 '13 at 15:42
    
I'm sure I've done this in the recent past. I'll search for a snippet of code and i'll update the answer asap. –  michele Feb 19 '13 at 15:44
    
thanks, but i just remembered i think i can't do it that way because my DataTemplate is fixed (i load it from a File) so i think i'm not able to change this with out rebuild the DataTemplate –  WiiMaxx Feb 19 '13 at 15:50
1  
maybe i could add a DataTemplate that will select [0] and than in this DataTemplate i could ad my DataTemplate from the File what do you think? –  WiiMaxx Feb 19 '13 at 16:29
1  
@WiiMaxx I edit my answer. –  michele Feb 20 '13 at 10:27

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.